Deregulation of Ribosome Biogenesis in Nitrite-Oxidizing Bacteria Leads to Nitrite Accumulation

亚硝酸盐 核糖体RNA 核糖体蛋白 细菌 化学 核糖体 硝化作用 生物化学 生物 细胞生物学 微生物学 核糖核酸 生态学 基因 遗传学 有机化学 氮气 硝酸盐
作者
Weiping Xiong,Yuhang Ye,Dandan He,Siying He,Yinping Xiang,Jun Xiao,Wenyi Feng,Mengru Wu,Zhen Yang,Dongbo Wang
出处
期刊:Environmental Science & Technology [American Chemical Society]
卷期号:57 (43): 16673-16684 被引量:5
标识
DOI:10.1021/acs.est.3c06002
摘要

Nitrite (NO2-) accumulation caused by nitrite-oxidizing bacteria (NOB) inhibition in nitrification is a double-edged sword, i.e., a disaster in aquatic environments but a hope for innovating nitrogen removal technology in wastewater treatment. However, little information is available regarding the molecular mechanism of NOB inhibition at the cellular level. Herein, we investigate the response of NOB inhibition on NO2- accumulation established by a side-stream free ammonia treatment unit in a nitrifying reactor using integrated metagenomics and metaproteomics. Results showed that compared with the baseline, the relative abundance and activity of NOB in the experimental stage decreased by 91.64 and 68.66%, respectively, directly resulting in a NO2- accumulation rate of 88%. Moreover, RNA polymerase, translation factors, and aa-tRNA ligase were significantly downregulated, indicating that protein synthesis in NOB was interfered during NO2- accumulation. Further investigations showed that ribosomal proteins and GTPases, responsible for bindings between either ribosomal proteins and rRNA or ribosome subunits, were remarkably downregulated. This suggests that ribosome biogenesis was severely disrupted, which might be the key reason for the inhibited protein synthesis. Our findings fill a knowledge gap regarding the underlying mechanisms of NO2- accumulation, which would be beneficial for regulating the accumulation of NO2- in aquatic environments and engineered systems.
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